English

High-Power Polarization-Controlled Attosecond-Scale Soft X-ray Pulses

Accelerator Physics 2026-06-30 v1

Abstract

We demonstrate a versatile platform for high-power attosecond soft X-ray pulse generation with polarization and photon energy control at the SwissFEL free-electron laser. An isolated high-current spike embedded within a long electron-beam pedestal emits soft X-ray pulses with single-spike spectra and multi-electronvolt bandwidths in the tunable magnetic fields of Apple-X undulators. Demonstrated pulse parameters include a photon energy range of 450--1070 eV, circular as well as linear polarization, and pulse energies from tens to above hundred microjoules. By tuning the longitudinal slice-dependent transverse electron beam orbit we can rapidly switch between attosecond and few femtosecond pulse length. By exploiting magnetic chicanes in the undulator line we can produce two-colour pulse pairs with tunable delay or increase the pulse energy beyond 200~\textmu J through multi-stage amplification schemes. High-resolution longitudinal phase-space measurements and start-to-end simulations in addition to spectral measurements provide consistent evidence for attosecond-scale pulse durations. This unique combination of high pulse energy and polarization control of attosecond-scale soft X-ray pulses enables the element-specific investigations of spin and chiral dynamics on the natural time scale of electron motion.

Cite

@article{arxiv.2606.31335,
  title  = {High-Power Polarization-Controlled Attosecond-Scale Soft X-ray Pulses},
  author = {Zhaoheng Guo and Carlo Vicario and Andre Al Haddad and Christopher Arrell and Andreas Dax and Umit Demirbas and Nicole Hiller and Martin Huppert and Christoph Kittel and Gregor Knopp and Eduard Prat and Sven Reiche and Antoine Sarracini and Thomas Schietinger and Kirsten Schnorr and Alexandre Trisorio and Didier Voulot and Tobias Weilbach and Hankai Zhang and Christoph Bostedt and Philipp Dijkstal},
  journal= {arXiv preprint arXiv:2606.31335},
  year   = {2026}
}

Comments

20 pages, 6 figures in the main text, 5 figures in the supplementary information

R2 v1 2026-07-22T20:18:17.324Z